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An Efficient Approach for Mars Sample Return Using Emerging Commercial CapabilitiesMars Sample Return is the highest priority science mission for the next decade as recommended by the 2011 Decadal Survey of Planetary Science. This article presents the results of a feasibility study for a Mars Sample Return mission that efficiently uses emerging commercial capabilities expected to be available in the near future. The motivation of our study was the recognition that emerging commercial capabilities might be used to perform Mars Sample Return with an Earth-direct architecture, and that this may offer a desirable simpler and lower cost approach. The objective of the study was to determine whether these capabilities can be used to optimize the number of mission systems and launches required to return the samples, with the goal of achieving the desired simplicity. All of the major element required for the Mars Sample Return mission are described. Mission system elements were analyzed with either direct techniques or by using parametric mass estimating relationships. The analysis shows the feasibility of a complete and closed Mars Sample Return mission design based on the following scenario: A SpaceX Falcon Heavy launch vehicle places a modified version of a SpaceX Dragon capsule, referred to as "Red Dragon", onto a Trans Mars Injection trajectory. The capsule carries all the hardware needed to return to Earth Orbit samples collected by a prior mission, such as the planned NASA Mars 2020 sample collection rover. The payload includes a fully fueled Mars Ascent Vehicle; a fueled Earth Return Vehicle, support equipment, and a mechanism to transfer samples from the sample cache system onboard the rover to the Earth Return Vehicle. The Red Dragon descends to land on the surface of Mars using Supersonic Retropropulsion. After collected samples are transferred to the Earth Return Vehicle, the single-stage Mars Ascent Vehicle launches the Earth Return Vehicle from the surface of Mars to a Mars phasing orbit. After a brief phasing period, the Earth Return Vehicle performs a Trans Earth Injection burn. Once near Earth, the Earth Return Vehicle performs Earth and lunar swing-bys and is placed into a Lunar Trailing Orbit - an Earth orbit, at lunar distance. A retrieval mission then performs a rendezvous with the Earth Return Vehicle, retrieves the sample container, and breaks the chain of contact with Mars by transferring the sample into a sterile and secure container. With the sample contained, the retrieving spacecraft makes a controlled Earth re-entry preventing any unintended release of Martian materials into the Earth's biosphere. The mission can start in any one of three Earth to Mars launch opportunities, beginning in 2022.
Document ID
20160002932
Acquisition Source
Ames Research Center
Document Type
Accepted Manuscript (Version with final changes)
External Source(s)
Authors
Andrew A Gonzales
(Ames Research Center Mountain View, California, United States)
Carol R Stoker
(Ames Research Center Mountain View, California, United States)
Date Acquired
March 3, 2016
Publication Date
March 3, 2016
Publication Information
Publication: Acta Astronautica
Publisher: Elsevier
Volume: 123
Issue Publication Date: June 1, 2016
e-ISSN: 0094-5765
Subject Category
Lunar And Planetary Science And Exploration
Economics And Cost Analysis
Report/Patent Number
ARC-E-DAA-TN28882
E-ISSN: 0094-5765
Report Number: ARC-E-DAA-TN28882
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Keywords
Commercial
Entry
and Landing
Red Dragon
Mars Sample Return
SpaceX
Descent
Supersonic Retropropulsion
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